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Mitochondrial Transfer from Wharton's Jelly Mesenchymal Stem Cell to MERRF Cybrid Reduces Oxidative Stress and Improves Mitochondrial Bioenergetics

Myoclonus epilepsy associated with ragged-red fibers (MERRF) is a maternally inherited mitochondrial disease affecting neuromuscular functions. Mt.8344A>G mutation in mitochondrial DNA (mtDNA) is the most common cause of MERRF syndrome and has been linked to an increase in reactive oxygen species...

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Autores principales: Chuang, Yao-Chung, Liou, Chia-Wei, Chen, Shang-Der, Wang, Pei-Wen, Chuang, Jiin-Haur, Tiao, Mao-Meng, Hsu, Te-Yao, Lin, Hung-Yu, Lin, Tsu-Kung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5457778/
https://www.ncbi.nlm.nih.gov/pubmed/28607632
http://dx.doi.org/10.1155/2017/5691215
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author Chuang, Yao-Chung
Liou, Chia-Wei
Chen, Shang-Der
Wang, Pei-Wen
Chuang, Jiin-Haur
Tiao, Mao-Meng
Hsu, Te-Yao
Lin, Hung-Yu
Lin, Tsu-Kung
author_facet Chuang, Yao-Chung
Liou, Chia-Wei
Chen, Shang-Der
Wang, Pei-Wen
Chuang, Jiin-Haur
Tiao, Mao-Meng
Hsu, Te-Yao
Lin, Hung-Yu
Lin, Tsu-Kung
author_sort Chuang, Yao-Chung
collection PubMed
description Myoclonus epilepsy associated with ragged-red fibers (MERRF) is a maternally inherited mitochondrial disease affecting neuromuscular functions. Mt.8344A>G mutation in mitochondrial DNA (mtDNA) is the most common cause of MERRF syndrome and has been linked to an increase in reactive oxygen species (ROS) level and oxidative stress, as well as impaired mitochondrial bioenergetics. Here, we tested whether WJMSC has therapeutic potential for the treatment of MERRF syndrome through the transfer of mitochondria. The MERRF cybrid cells exhibited a high mt.8344A>G mutation ratio, enhanced ROS level and oxidative damage, impaired mitochondrial bioenergetics, defected mitochondria-dependent viability, exhibited an imbalance of mitochondrial dynamics, and are susceptible to apoptotic stress. Coculture experiments revealed that mitochondria were intercellularly conducted from the WJMSC to the MERRF cybrid. Furthermore, WJMSC transferred mitochondria exclusively to cells with defective mitochondria but not to cells with normal mitochondria. MERRF cybrid following WJMSC coculture (MF+WJ) demonstrated improvement of mt.8344A>G mutation ratio, ROS level, oxidative damage, mitochondrial bioenergetics, mitochondria-dependent viability, balance of mitochondrial dynamics, and resistance against apoptotic stress. WJMSC-derived mitochondrial transfer and its therapeutic effect were noted to be blocked by F-actin depolymerizing agent cytochalasin B. Collectively, the WJMSC ability to rescue cells with defective mitochondrial function through donating healthy mitochondria may lead to new insights into the development of more efficient strategies to treat diseases related to mitochondrial dysfunction.
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spelling pubmed-54577782017-06-12 Mitochondrial Transfer from Wharton's Jelly Mesenchymal Stem Cell to MERRF Cybrid Reduces Oxidative Stress and Improves Mitochondrial Bioenergetics Chuang, Yao-Chung Liou, Chia-Wei Chen, Shang-Der Wang, Pei-Wen Chuang, Jiin-Haur Tiao, Mao-Meng Hsu, Te-Yao Lin, Hung-Yu Lin, Tsu-Kung Oxid Med Cell Longev Research Article Myoclonus epilepsy associated with ragged-red fibers (MERRF) is a maternally inherited mitochondrial disease affecting neuromuscular functions. Mt.8344A>G mutation in mitochondrial DNA (mtDNA) is the most common cause of MERRF syndrome and has been linked to an increase in reactive oxygen species (ROS) level and oxidative stress, as well as impaired mitochondrial bioenergetics. Here, we tested whether WJMSC has therapeutic potential for the treatment of MERRF syndrome through the transfer of mitochondria. The MERRF cybrid cells exhibited a high mt.8344A>G mutation ratio, enhanced ROS level and oxidative damage, impaired mitochondrial bioenergetics, defected mitochondria-dependent viability, exhibited an imbalance of mitochondrial dynamics, and are susceptible to apoptotic stress. Coculture experiments revealed that mitochondria were intercellularly conducted from the WJMSC to the MERRF cybrid. Furthermore, WJMSC transferred mitochondria exclusively to cells with defective mitochondria but not to cells with normal mitochondria. MERRF cybrid following WJMSC coculture (MF+WJ) demonstrated improvement of mt.8344A>G mutation ratio, ROS level, oxidative damage, mitochondrial bioenergetics, mitochondria-dependent viability, balance of mitochondrial dynamics, and resistance against apoptotic stress. WJMSC-derived mitochondrial transfer and its therapeutic effect were noted to be blocked by F-actin depolymerizing agent cytochalasin B. Collectively, the WJMSC ability to rescue cells with defective mitochondrial function through donating healthy mitochondria may lead to new insights into the development of more efficient strategies to treat diseases related to mitochondrial dysfunction. Hindawi 2017 2017-05-04 /pmc/articles/PMC5457778/ /pubmed/28607632 http://dx.doi.org/10.1155/2017/5691215 Text en Copyright © 2017 Yao-Chung Chuang et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Chuang, Yao-Chung
Liou, Chia-Wei
Chen, Shang-Der
Wang, Pei-Wen
Chuang, Jiin-Haur
Tiao, Mao-Meng
Hsu, Te-Yao
Lin, Hung-Yu
Lin, Tsu-Kung
Mitochondrial Transfer from Wharton's Jelly Mesenchymal Stem Cell to MERRF Cybrid Reduces Oxidative Stress and Improves Mitochondrial Bioenergetics
title Mitochondrial Transfer from Wharton's Jelly Mesenchymal Stem Cell to MERRF Cybrid Reduces Oxidative Stress and Improves Mitochondrial Bioenergetics
title_full Mitochondrial Transfer from Wharton's Jelly Mesenchymal Stem Cell to MERRF Cybrid Reduces Oxidative Stress and Improves Mitochondrial Bioenergetics
title_fullStr Mitochondrial Transfer from Wharton's Jelly Mesenchymal Stem Cell to MERRF Cybrid Reduces Oxidative Stress and Improves Mitochondrial Bioenergetics
title_full_unstemmed Mitochondrial Transfer from Wharton's Jelly Mesenchymal Stem Cell to MERRF Cybrid Reduces Oxidative Stress and Improves Mitochondrial Bioenergetics
title_short Mitochondrial Transfer from Wharton's Jelly Mesenchymal Stem Cell to MERRF Cybrid Reduces Oxidative Stress and Improves Mitochondrial Bioenergetics
title_sort mitochondrial transfer from wharton's jelly mesenchymal stem cell to merrf cybrid reduces oxidative stress and improves mitochondrial bioenergetics
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5457778/
https://www.ncbi.nlm.nih.gov/pubmed/28607632
http://dx.doi.org/10.1155/2017/5691215
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